EP2396607B1 - Capteur solaire, et installation de génération d'énergie électrique comportant de tels capteurs solaires - Google Patents

Capteur solaire, et installation de génération d'énergie électrique comportant de tels capteurs solaires Download PDF

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Publication number
EP2396607B1
EP2396607B1 EP20100708296 EP10708296A EP2396607B1 EP 2396607 B1 EP2396607 B1 EP 2396607B1 EP 20100708296 EP20100708296 EP 20100708296 EP 10708296 A EP10708296 A EP 10708296A EP 2396607 B1 EP2396607 B1 EP 2396607B1
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EP
European Patent Office
Prior art keywords
heat pipe
solar
hot
solar collector
cold
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
EP20100708296
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German (de)
English (en)
French (fr)
Other versions
EP2396607A2 (fr
Inventor
Jean-Antoine Gruss
Christian LENÔTRE
Alain Marechal
Didier Rossi
Michel Wohrer
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
SOPHIA ANTIPOLIS ENERGIE DEVELOPPEMENT
Commissariat a lEnergie Atomique et aux Energies Alternatives CEA
Original Assignee
Commissariat a lEnergie Atomique CEA
SOPHIA ANTIPOLIS ENERGIE DEVELOPPEMENT
Commissariat a lEnergie Atomique et aux Energies Alternatives CEA
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Priority to SI201030315T priority Critical patent/SI2396607T1/sl
Publication of EP2396607A2 publication Critical patent/EP2396607A2/fr
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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01KSTEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
    • F01K25/00Plants or engines characterised by use of special working fluids, not otherwise provided for; Plants operating in closed cycles and not otherwise provided for
    • F01K25/08Plants or engines characterised by use of special working fluids, not otherwise provided for; Plants operating in closed cycles and not otherwise provided for using special vapours
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F22STEAM GENERATION
    • F22BMETHODS OF STEAM GENERATION; STEAM BOILERS
    • F22B1/00Methods of steam generation characterised by form of heating method
    • F22B1/006Methods of steam generation characterised by form of heating method using solar heat
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24DDOMESTIC- OR SPACE-HEATING SYSTEMS, e.g. CENTRAL HEATING SYSTEMS; DOMESTIC HOT-WATER SUPPLY SYSTEMS; ELEMENTS OR COMPONENTS THEREFOR
    • F24D18/00Small-scale combined heat and power [CHP] generation systems specially adapted for domestic heating, space heating or domestic hot-water supply
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S10/00Solar heat collectors using working fluids
    • F24S10/40Solar heat collectors using working fluids in absorbing elements surrounded by transparent enclosures, e.g. evacuated solar collectors
    • F24S10/45Solar heat collectors using working fluids in absorbing elements surrounded by transparent enclosures, e.g. evacuated solar collectors the enclosure being cylindrical
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S10/00Solar heat collectors using working fluids
    • F24S10/90Solar heat collectors using working fluids using internal thermosiphonic circulation
    • F24S10/95Solar heat collectors using working fluids using internal thermosiphonic circulation having evaporator sections and condenser sections, e.g. heat pipes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24DDOMESTIC- OR SPACE-HEATING SYSTEMS, e.g. CENTRAL HEATING SYSTEMS; DOMESTIC HOT-WATER SUPPLY SYSTEMS; ELEMENTS OR COMPONENTS THEREFOR
    • F24D2101/00Electric generators of small-scale CHP systems
    • F24D2101/10Gas turbines; Steam engines or steam turbines; Water turbines, e.g. located in water pipes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24DDOMESTIC- OR SPACE-HEATING SYSTEMS, e.g. CENTRAL HEATING SYSTEMS; DOMESTIC HOT-WATER SUPPLY SYSTEMS; ELEMENTS OR COMPONENTS THEREFOR
    • F24D2105/00Constructional aspects of small-scale CHP systems
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/40Solar thermal energy, e.g. solar towers
    • Y02E10/44Heat exchange systems
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/40Solar thermal energy, e.g. solar towers
    • Y02E10/46Conversion of thermal power into mechanical power, e.g. Rankine, Stirling or solar thermal engines
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/60Other road transportation technologies with climate change mitigation effect
    • Y02T10/7072Electromobility specific charging systems or methods for batteries, ultracapacitors, supercapacitors or double-layer capacitors

Definitions

  • a vacuum tube solar collector comprising an outer tube and an inner tube, the tubes being concentric and substantially cylindrical. Each tube is closed at one of its ends, and the tubes are sealed to each other, at the other of their ends.
  • the solar collector comprises a solar radiation absorption layer disposed on an outer surface of the inner tube, facing the outer tube.
  • the solar collector comprises a heat pipe having a hot part (evaporator) arranged inside the inner tube, a cold part (condenser) disposed outside the tubes, and a reservoir containing a coolant, and extending over the hot part and the cold part.
  • the hot portion of the heat pipe comprises the cylinder-shaped reservoir substantially centered on the axis of the inner tube, and two fins fixed to the cylindrical reservoir, diametrically opposite, and mechanically and thermally connecting the reservoir to the inner surface of the inner tube.
  • the tank has a diameter much smaller than that of the inner tube.
  • An object of the invention is therefore to improve the heat conduction to the heat pipe, in order to reduce the heat losses.
  • the subject of the invention is a solar collector according to claim 1.
  • the energy flux emitted by a black body also called the amount of radiation of the black body, grows as the fourth power of T, where T represents the absolute temperature of the black body, expressed in kelvin.
  • T represents the absolute temperature of the black body, expressed in kelvin.
  • the solar collector according to the invention ensures a better thermal conduction between the absorption layer, assimilated to a black body, and the heat pipe, which significantly reduces the rise in the temperature of the absorption layer relative to a sensor. solar classic.
  • the solar collector according to the invention makes it possible to reduce the radiation heat losses of the black body escaping the greenhouse effect, thus improving the efficiency of the sensor.
  • the invention also relates to a hot water production system of the aforementioned type, characterized in that the solar collectors are as defined above.
  • the invention also relates to an electrical energy generation installation of the aforementioned type, characterized in that the hot water production system is as defined above.
  • an installation for generating electrical energy from solar energy comprises a system 2 for producing hot water, a cold source 4 and a thermodynamic machine 6 for generating electricity.
  • the hot water production system 2 comprises means 8 for heating by solar energy a first heat transfer fluid 10, means 12 for storing the thermal energy and a first closed circuit 14 for transporting the first heat transfer fluid 10.
  • the first circuit 14 connects the heating means 8, the storage means 12 and the thermodynamic machine 6 for generating electricity.
  • the hot water production system 2 comprises a storage tank 16 for unloading the first circuit 14 for transporting the first heat transfer fluid 10.
  • the hot water production system 2 comprises a control loop 18 comprising a mixer 20 and a first pump 22.
  • the installation comprises means 24 for remote control of the loop 18.
  • the heating means 8 comprise a plurality of solar collectors 26 described in more detail below with reference to the Figures 2 to 7 .
  • the first coolant 10 is, for example, water used at a maximum temperature of 150 ° C and a maximum pressure of 6 bar.
  • the first circuit 14 comprises a plurality of valves 28, the mixer 20, the first pump 22 and a second pump 30.
  • the circulation of the first fluid 10 in the first circuit 14 is provided by the two pumps 22, 30.
  • the storage means 12 and the first circuit 14 are insulated by an insulator, not shown.
  • the cold source 4 comprises a second circuit 32 for transporting a second coolant 34.
  • the circulation is provided by a pump 36.
  • the second fluid 34 is, for example, water.
  • the thermodynamic machine 6 comprises a third circuit 38 for transporting a service fluid 40, a boiler 42, a turbine 43 coupled to an electricity generator 44 and a condenser 45.
  • the circulation of the operating fluid 40 in the third circuit 38 is provided by a pump 46.
  • the operating fluid 40 is, for example, an organic fluid, such as butane or propane, preferably butane.
  • the boiling temperature of the operating fluid 40 is substantially low and close to 80 ° C for a pressure of 9.6 bar.
  • the boiler 42 is intended to pass the operating fluid 40 from the liquid state to the gaseous state, from hot water.
  • the first circuit 14 of the hot source is in the form of a coil inside the boiler 42, the coil being in contact with the service fluid 40.
  • the service fluid 40 is in the state gaseous, at a temperature of about 95 ° C and a pressure of about 11 bar.
  • the turbine 43 comprises, in a conventional manner, a rotor comprising a shaft on which vanes are fixed, and a stator comprising a casing carrying fixed deflectors.
  • the operating fluid 40 is in the gaseous state, and at a temperature of about 40 ° C. under a pressure of between 2 and 3 bars.
  • the turbine 43 is intended to convert the energy resulting from the expansion of the service fluid 40 in the gaseous state into mechanical energy.
  • the condenser 45 is intended to pass the operating fluid 40 from the state inside the condenser 45, said coil being in contact with the service fluid 40. At the outlet of the condenser 45, the service fluid 40 is at the liquid state.
  • the first circuit 14 comprises a conduit 48 for transporting the first coolant 10, and a thermally insulating sheath 50 disposed on the periphery of the conduit 48.
  • the conduit 48 is in the form of a cylinder with an axis oriented in a substantially horizontal plane H.
  • the solar collector 26 comprises a layer 52 for absorbing solar radiation R s , thermal insulation means 54, and a heat pipe 56.
  • the heat pipe 56 is formed of a sheet having a left surface matching the shape of the means 54 and the transport conduit 48. It comprises a hot part 58 arranged inside the insulating means 54, a cold part 60 disposed outside the insulating means 54. It comprises a reservoir 62 formed of a set of channels connected to each other by a web giving the heat pipe 56 its sheet structure.
  • the reservoir 62 contains a coolant heat-transfer fluid 63, and extends over the hot part 58 and the cold part 60. For the hot part 58 of the heat pipe, the reservoir 62 is applied at least locally against the absorption layer 52.
  • the absorption layer 52 is, for example, made of pulverized aluminum nitrite.
  • the insulation means 54 substantially hermetically surround the absorption layer 52 and are adapted to allow the passage of solar radiation R s .
  • the isolation means 54 are able to thermally isolate the absorption layer 52 and the hot part 58 of the heat pipe with respect to the external climatic conditions of the solar collector 26.
  • the insulation means 54 comprise an outer tube 64 and an inner tube 66 disposed inside the outer tube 64.
  • the tubes 64, 66 which are substantially cylindrical, have a circular cross section and are concentric with an axis I. Each tube 64, 66 is closed, in the shape of a hemisphere at one of its ends, and the tubes 64, 66 are sealed to each other, in the other of their extremities.
  • the inner tube 66 is open at its other end.
  • the inner tube 66 has an outer surface 66A facing the outer tube 64, and an inner surface 66B.
  • the two tubes 64, 66 are separated by a vacuum 67.
  • the absorption layer 52 is disposed against the outer surface 66A of the inner tube 66, in the vacuum 67.
  • the tubes 64, 66 are, for example, made of glass.
  • the isolation means 54 comprise an isolation plug 68 inserted into the open end of the inner tube 66.
  • the solar collector 26 has a thermally conductive interface 69, visible on the Figures 4 and 5 , arranged between the hot part 58 of the heat pipe and the insulation means 54. More specifically, the conductive interface 69 is disposed between the inner surface of the inner tube 66 and the hot part 58 of the heat pipe.
  • the isolation means 54 comprise the only outer tube 64 closed at one of its ends, the absorption layer 52 being disposed directly on the hot part 58 of the heat pipe, the vacuum 67 being formed inside. outer tube 64.
  • the hot portion 58 of the heat pipe is in the form of a half-cylinder of axis I, as shown in FIG. figure 4 .
  • the cross section of the hot part 58 is in the shape of a circular arc of angle A between 180 ° and 220 °.
  • the hot part 58 of the heat pipe and in particular the part of the tank 62 contained in this hot part 58 is applied against the inner surface 66B of the inner tube 66.
  • the hot part 58 of the heat pipe and in particular the part of the tank 62 contained in this hot part directly carries the absorption layer 52.
  • the cold part 60 of the heat pipe is in the form of an X-axis half-cylinder arranged between the pipe 48 and the insulating sheath 50 by being wound around the pipe 48, as shown in FIG. figure 2 .
  • the axis I of the half-cylinder of the hot part 58 is distinct from the axis X of the half-cylinder of the cold part 60.
  • the axis I is inclined relative to the horizontal plane H, and forms with the horizontal plane H a first angle of inclination B1.
  • the value of the first inclination angle B1 is greater than 5 °, preferably greater than 30 °.
  • each solar collector 26 is fixed to the duct 48 by means of a fastener 69.
  • the fastener 69 comprises a first portion 69A of cylindrical shape and a second portion 69B of planar shape, the first and second portions 69A, 69B being connected by a bend 69C.
  • the fastener 69 is thermally conductive, and is, for example, made of aluminum.
  • the first portion 69A is arranged in contact with the duct 48, between the duct 48 and the thermally insulating sheath 50, diametrically opposite the hot portion 60 of the heat pipe with respect to the duct 48.
  • the second portion 69B is arranged in contact with the heat pipe. 56.
  • the fastener 69 is attached to the heat pipe 56 via first fastening means 69D and second fastening means 69E extending through respective orifices of the fastener 69 and the heat pipe 56.
  • the reservoir 62 comprises, for example, three channels 70 for circulating the heat pipe fluid 63.
  • the three circulation channels 70 are connected and form, with their extension in the cold part 60, a closed circuit for the heat pipe fluid 63.
  • Each of the channels 70 is oriented substantially along the axis I of the hot part 58 in the form of a half-cylinder.
  • the term 'substantially' means an angular deviation of up to ⁇ 5 ° with respect to axis I.
  • the channels 70 have straight parallel sections 70A extending in the hot part 58. They are connected at their free end by a connecting pipe 70B. Each rectilinear section is extended by a straight section 70C proper extending in the cold part 60.
  • the sections 70A and 70C are connected by a beam of convergent sections 70D and divergent disposed in the region of change of curvature of the sheet forming the heat pipe. .
  • the heat pipe fluid 63 is, for example, methanol, ethanol, a refrigerant HFC, or a refrigerant HCFC.
  • the heat pipe 56 comprises a narrowing 71 of its circumferential extent between the hot part 58 and the cold part 60, with respect to its extent in the current part of the hot and cold parts 60.
  • the constriction 71 visible on the figures 3 and 6 , forms a connecting hinge between the hot part 58 and the cold part 60.
  • the heat pipe 56 is formed of two sheets 72A, 72B, visible on the Figures 4 and 5 , and fixed between them.
  • Each channel 70 of the reservoir 62 is formed by a gap between the two sheets 72A, 72B.
  • the leaves 72A, 72B of the heat pipe are, for example, metal sheets fused together outside the zones defining the channels.
  • the metal foils 72A, 72B are, for example, made of aluminum.
  • the realization of the interstices forming the channels 70 of the heat pipe is obtained by placing on one of the two sheets 72A, 72B a specific ink before melting, in order to prevent the two metals from fusing in the zones where the specific ink has been arranged. .
  • the two sheets 72A, 72B are then hot-rolled to form a single sheet.
  • the channels 70 are then obtained by blowing compressed air into the areas that have been inked.
  • the figure 6 illustrates the heat pipe 56 in its planar shape after cutting the two sheets 72A, 72B merged according to the desired periphery, and before its shaping in the form of half-cylinders axes I, X.
  • the hot part 58 and the cold part 60 have, for example, the same first width L1 perpendicular to a direction of extension of the heat pipe 56.
  • the first width L1 is, for example, equal to 80 mm.
  • the constriction 71 has, perpendicular to the direction of extension, a second width L2 of value less than that of the first width L1.
  • the second width L2 is, for example, equal to 32 mm.
  • the operating temperature of the vacuum tube solar collectors 26 is between 80 ° C and 150 ° C.
  • the electrical energy generation installation is said to be at a low temperature, given the maximum temperature of the hot water production system equal to 150 ° C which is significantly lower than that used in other solar thermal power plants, such as parabolic trough power plants, tower power plants, parabolic power plants, where the temperature of the heat transfer fluid circulating in the hot spring is greater than 400 ° C.
  • the solar collectors 26 of the heating means 6 capture, during the day, the solar radiation R s , then transmit to the first coolant 10 the thermal energy associated with solar radiation R s .
  • the solar radiation R s is absorbed by the absorption layer 52 of each solar sensor, the isolation means 54 allowing the passage of solar radiation R s .
  • the thermal energy associated with the absorption of the solar radiation R s is then transmitted to the heat pipe 56 via the inner tube 66 and the thermally conductive interface 69.
  • the dissipation of the thermal energy outside the solar collector 26 is limited by the thermal insulation means 54, the vacuum 67 providing the thermal insulation and the greenhouse effect.
  • the insulating means 54 comprise the single outer tube 64
  • a good thermal conduction is also provided between the absorption layer 52 and the heat pipe 56, the absorption layer 52 being directly applied to the hot part 58 of the heat pipe.
  • the heat energy transmitted to the hot part 58 of the heat pipe gradually causes a phase change of the heat pipe fluid 63, from its being liquid to its gaseous state.
  • the heat pipe fluid in the gaseous state then rises towards the cold part 60 of the heat pipe, through the various channels 70 of the tank.
  • the reservoir 62 being applied at least locally against the absorption layer 52 in the hot part 58 of the heat pipe, the thermal conduction is improved between the absorption layer 52 and the heat pipe fluid 63, so that the heat losses are reduced.
  • the heat transported by the heat pipe fluid 63 from the hot part 58 to the cold part 60 is then transmitted to the first heat transfer fluid 10 by thermal conduction between the channels 70 arranged in the cold part 60 and the duct 48 of the first circuit. This thermal conduction then causes an increase in the temperature of the first heat transfer fluid 10 and a lowering of the temperature of the heat pipe fluid 63.
  • the heat pipe fluid 63 again changes phase progressively, from its gaseous state to its liquid state.
  • the heat pipe fluid in the liquid state then descends by gravitation from the cold part 60 to the hot part 58, by the angle of inclination B1, in order to transport solar thermal energy again.
  • the storage means 12 then serve as buffers between the thermal energy produced by the solar collectors 26 of the heating means and that consumed by the thermodynamic machine 6 for generating electricity.
  • the heating means 12 thus make it possible to decouple the electricity production from the solar availability.
  • the regulation loop 18 makes it possible to adapt the amount of thermal energy supplied by the hot water production system 2 to the thermodynamic machine 6 for producing electricity.
  • the operating fluid 40 changes from the liquid state to the gaseous state in the boiler 42.
  • the service fluid 40 thus arrives in the gaseous state at the inlet of the turbine 43.
  • the service fluid in the gaseous state then expands in the turbine 43 and provides mechanical energy, driving the rotor of the turbine in rotation. This mechanical energy is transmitted to the generator 44, in order to produce electricity.
  • the operating fluid 40 In outlet of the turbine 43, the operating fluid 40 is always in the gaseous state, and under a significantly lower pressure.
  • the operating fluid 40 then returns to the liquid state in the condenser 45 in contact with the cold source 4. At the outlet of the condenser 45, the operating fluid 40 in the liquid state is then driven by the pump 46 to return to the inlet of the boiler 42 and use again the heat supplied by the hot water production system 2.
  • FIG 7 illustrates another embodiment, for which elements similar to the embodiment described above are identified by identical references.
  • the insulating means 54 do not have an insulation plug at the open end of the inner tube 66.
  • the insulation at the open end of the inner tube 66 is provided by the insulating sheath 50 arranged around the conduit 48, the ends sealed together with tubes 64, 66 being arranged in contact with the insulating sheath 50.
  • the cold part 60 of the heat pipe is in the form of two half-cylinders diametrically opposite with respect to the pipe 48.
  • the half-cylinders of the cold part 60 are arranged between the pipe 48 and the insulating sheath 50.
  • the heat pipe 56 has a second inclination angle B2 between the top of the hot part 58 and the bottom of the pipe 48.
  • the variation of the first inclination angle B1 between the axis of the hot part 58 of the heat pipe and the horizontal plane H has an influence on the second angle of inclination B2.
  • the value of the second angle of inclination B2 is, for example, greater than 5 °, in order to allow a relatively rapid gravitational descent of the heat pipe fluid 63 in the liquid state from the cold part 60 to the hot part 58.
  • FIG 8 illustrates another embodiment, for which elements similar to the embodiment described above are identified by identical references.
  • the hot water production system 2 comprises a distributor 80 of hot water, and is not connected to a thermodynamic machine for generating electricity.
  • the transport circuit 14 heat transfer fluid 10 connects the solar collectors 26 to the hot water dispenser 80.
  • the distributor 80 comprises a coil-shaped exchanger 82 intended to exploit the heat transported by the coolant 10.
  • the solar collector according to the invention makes it possible to ensure a better thermal conduction between the absorption layer and the reservoir in the hot part of the heat pipe, which makes it possible to limit the heat losses.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Sustainable Energy (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Sustainable Development (AREA)
  • Photovoltaic Devices (AREA)
  • Heat-Pump Type And Storage Water Heaters (AREA)
  • Engine Equipment That Uses Special Cycles (AREA)
  • Central Heating Systems (AREA)
  • Greenhouses (AREA)
  • Organic Low-Molecular-Weight Compounds And Preparation Thereof (AREA)
EP20100708296 2009-02-12 2010-02-08 Capteur solaire, et installation de génération d'énergie électrique comportant de tels capteurs solaires Active EP2396607B1 (fr)

Priority Applications (1)

Application Number Priority Date Filing Date Title
SI201030315T SI2396607T1 (sl) 2009-02-12 2010-02-08 Solarni kolektor in elektrarna s tovrstnim solarnim kolektorjem

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
FR0950884A FR2942028B1 (fr) 2009-02-12 2009-02-12 Capteur solaire, et installation de generation d'energie electrique comportant de tels capteurs solaires
PCT/FR2010/050196 WO2010092283A2 (fr) 2009-02-12 2010-02-08 Capteur solaire, et installation de génération d'énergie électrique comportant de tels capteurs solaires

Publications (2)

Publication Number Publication Date
EP2396607A2 EP2396607A2 (fr) 2011-12-21
EP2396607B1 true EP2396607B1 (fr) 2013-06-12

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EP20100708296 Active EP2396607B1 (fr) 2009-02-12 2010-02-08 Capteur solaire, et installation de génération d'énergie électrique comportant de tels capteurs solaires

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US (1) US9027347B2 (ja)
EP (1) EP2396607B1 (ja)
JP (1) JP5657576B2 (ja)
CN (1) CN102356284B (ja)
AU (1) AU2010212699A1 (ja)
BR (1) BRPI1005692A2 (ja)
DK (1) DK2396607T3 (ja)
ES (1) ES2428616T3 (ja)
FR (1) FR2942028B1 (ja)
HR (1) HRP20130854T1 (ja)
MA (1) MA33089B1 (ja)
SI (1) SI2396607T1 (ja)
TN (1) TN2011000411A1 (ja)
WO (1) WO2010092283A2 (ja)

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DE202017006708U1 (de) 2016-11-22 2018-02-05 Viessmann Werke Gmbh & Co Kg Solarkollektor

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WO2013086092A1 (en) * 2011-12-08 2013-06-13 Paya Diaz Gaspar Pablo Thermal energy conversion plant
EP2789930B1 (de) * 2013-04-11 2017-07-19 KBB Kollektorbau GmbH Sonnenkollektor
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KR101438434B1 (ko) * 2013-05-21 2014-09-12 한국에너지기술연구원 태양열 발전 시스템
KR101438436B1 (ko) 2013-05-21 2014-09-12 한국에너지기술연구원 태양열 발전 시스템
ITUA20163639A1 (it) * 2016-05-20 2017-11-20 Brahma S P A Sistema di riscaldamento ibrido
GB2540670B (en) * 2016-06-22 2018-02-14 Future Energy Source Ltd A solar energy capture, energy conversion and energy storage system
FR3101403B1 (fr) 2019-10-01 2021-09-17 Commissariat Energie Atomique Capteur solaire thermique modulaire

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HRP20130854T1 (hr) 2013-12-06
US9027347B2 (en) 2015-05-12
FR2942028A1 (fr) 2010-08-13
EP2396607A2 (fr) 2011-12-21
FR2942028B1 (fr) 2012-09-14
DK2396607T3 (da) 2013-09-16
JP2012517579A (ja) 2012-08-02
ES2428616T3 (es) 2013-11-08
CN102356284A (zh) 2012-02-15
TN2011000411A1 (fr) 2013-03-27
WO2010092283A3 (fr) 2010-10-14
MA33089B1 (fr) 2012-03-01
WO2010092283A2 (fr) 2010-08-19
BRPI1005692A2 (pt) 2020-08-18
AU2010212699A1 (en) 2011-10-06
CN102356284B (zh) 2014-07-09
JP5657576B2 (ja) 2015-01-21
US20120124999A1 (en) 2012-05-24
SI2396607T1 (sl) 2014-01-31

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